A r.v. X assumes values 1, 2, 3, …, n wi...

A r.v. X assumes values 1, 2, 3, …, n with equal probabilities. If Var (X) = E (X), then n =

A

11

B

5

C

6

D

7

Text Solution

Verified by Experts

The correct Answer is:

D

Topper's Solved these Questions

PLANE
NIKITA PUBLICATION|Exercise MULTIOLE CHOICE QUESTIONS|154 Videos
QUESTION PAPER MHT-CET 2016
NIKITA PUBLICATION|Exercise MCQs|50 Videos

Similar Questions

Explore conceptually related problems

A r.v. X assumes values 1, 2, 3, …, n with equal probabilities. If Var (X) = 4 E (X), then n =

If a r. v. X assumes the values 1,2,3,…………,9 with equal probabilities then E(x) = 5.

If X be a random variable taking values x_(1),x_(2),x_(3),….,x_(n) with probabilities P_(1),P_(2),P_(3) ,….. P_(n) , respectively. Then, Var (x) is equal to …….. .

For X ~ B (n,p),if E(X) = 18, Var(X) =12, then q =

For X ~ B (n,p),if E(X) = 18, Var(X) =12, then p =

For X ~ B (n,p),if E(X) = 5, Var (X) = 2.5, then p =

For X ~ B (n,p), n = 10, E (X) = 5, then Var (X) =

For a random variable X, if Var (X) = 4 and E(X^(2))=13 , the value of E(X) is

For X ~ B (n,p) and E (X) = 12, Var (X) = 4, then the value of n is

NIKITA PUBLICATION-PROBABILITY DISTRIBUTION-MCQs

Two cards are drawn at random from a box which contains 5 cards number...
Text Solution
|
A r.v. X assumes values 1, 2, 3, …, n with equal probabilities. If Var...
Text Solution
|
A r.v. X assumes values 1, 2, 3, …, n with equal probabilities. If Var...
Text Solution
|
The p.m.f. of a r.v. X is P(x) = {((2x)/(n(n+1)), x=1","2","....","n),...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:((2x)/(n(n+1))","x=1","2","...","n),...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:(kx","x=1","2","3),(0", therwise"):}...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:(kx","x=1","2","3),(0", otherwise"):...
Text Solution
|
The p.m.f. of a r.v X is P(x)={{:(kx","x=1","2","3),(0", otherwise"):}...
Text Solution
|
If X denotes the number obtained on the uppermost face when a fair di...
Text Solution
|
If X denotes the number obtained on the uppermost face when a fair die...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:(kx^(2)","x=1","2","3","4),(0", othe...
Text Solution
|
The p.m.f. of a r.v. X is P(x){{:(kx^(2)","x=1","2","3","4),(0", other...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:(2kx","x=1","2","3),(0", otherwise")...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:(2kx","x=1","2","3),(0", otherwise")...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:(2kx","x=1","2","3),(0", otherwise")...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:((1)/(15)","x=1","2","…","15),(0", o...
Text Solution
|
The p.m.f. of a r.v. X is P(x)={{:((1)/(15)","x=1","2","…","15),(0", o...
Text Solution
|
A players tosses 2 fair coins. He wins Rs. 5 if 2 heads appear, Rs. 2 ...
Text Solution
|
A player tosses 2 fair coins. He wins Rs. 5 if 2 heads appear, Rs. 2 i...
Text Solution
|
For the p.m.f. P (X = x) of discrete random variable X which takes val...
Text Solution
|